A review of green hydrogen production based on solar energy; techniques and methods

被引:62
作者
Hassan Q. [1 ]
Tabar V.S. [2 ]
Sameen A.Z. [3 ]
Salman H.M. [5 ]
Jaszczur M. [4 ]
机构
[1] Department of Mechanical Engineering, University of Diyala, Diyala
[2] Faculty of Electrical and Computer Engineering, University of Tabriz, Tabriz
[3] College of Medical Techniques, Al-Farahidi University, Baghdad
[4] Faculty of Energy and Fuels, AGH University of Science and Technology, Krakow
[5] Department of Computer Science, Al-Turath University College, Baghdad
关键词
electrolysis; green hydrogen production; hydrogen energy; solar energy;
D O I
10.1515/ehs-2022-0134
中图分类号
学科分类号
摘要
The study examines the methods for producing hydrogen using solar energy as a catalyst. The two commonly recognised categories of processes are direct and indirect. Due to the indirect processes low efficiency, excessive heat dissipation, and dearth of readily available heat-resistant materials, they are ranked lower than the direct procedures despite the direct procedures superior thermal performance. Electrolysis, bio photosynthesis, and thermoelectric photo-degradation are a few examples of indirect approaches. It appears that indirect approaches have certain advantages. The heterogeneous photocatalytic process minimises the quantity of emissions released into the environment; thermochemical reactions stand out for having low energy requirements due to the high temperatures generated; and electrolysis is efficient while having very little pollution created. Electrolysis has the highest exergy and energy efficiency when compared to other methods of creating hydrogen, according to the evaluation. © 2024 the author(s), published by De Gruyter.
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共 158 条
[1]  
Heliyon S., Eminer F., Sustainable Energy Planning for the Aspiration to Transition from Fossil Energy to Renewable Energy in Northern, Cyprus, 8, 6, (2022)
[2]  
Abbasi K.R., Shahbaz M., Zhang J., Irfan M., Alvarado R., Analyze the Environmental Sustainability Factors of China: The Role of Fossil Fuel Energy and Renewable Energy, Renewable Energy, 187, pp. 390-402, (2022)
[3]  
Abdulateef A.M., Jaszczur M., Hassan Q., Anish R., Niyas H., Sopian K., Abdulateef J., Enhancing the Melting of Phase Change Material Using a Fins–Nanoparticle Combination in a Triplex Tube Heat Exchanger, Journal of Energy Storage, 35, (2021)
[4]  
Abbasi T., Abbasi S.A., Renewable’hydrogen: Prospects and Challenges, Renewable and Sustainable Energy Reviews, 15, 6, pp. 3034-3040, (2011)
[5]  
Armaroli N., Balzani V., The Hydrogen Issue, ChemSusChem, 4, 1, pp. 21-36, (2011)
[6]  
Abanades A., Rubbia C., Salmieri D., Technological Challenges for Industrial Development of Hydrogen Production Based on Methane Cracking, Energy, 46, 1, pp. 359-363, (2012)
[7]  
Abdin Z., Webb C.J., Gray E.M., Solar Hydrogen Hybrid Energy Systems for Off-Grid Electricity Supply: A Critical Review, Renewable and Sustainable Energy Reviews, 52, pp. 1791-1808, (2015)
[8]  
Abbas M.K., Hassan Q., Tabar V.S., Tohidi S., Jaszczur M., Abdulrahman I.S., Salman H.M., Techno-economic Analysis for Clean Hydrogen Production Using Solar Energy under Varied Climate Conditions, International Journal of Hydrogen Energy, (2022)
[9]  
Abbas M.K., Hassan Q., Tabar V.S., Tohidi S., Jaszczur M., Abdulrahman I.S., Salman H.M., Techno-Economic Analysis for Clean Hydrogen Production Using Solar Energy under Varied Climate Conditions, International Journal of Hydrogen Energy, (2022)
[10]  
Borzuei D., Moosavian S.F., Ahmadi A., Investigating the Dependence of Energy Prices and Economic Growth Rates with Emphasis on the Development of Renewable Energy for Sustainable Development in Iran, Sustainable Development, (2022)